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European Health Evidence

The European alternative to PubMed

EUVIMED is the European alternative to PubMed: a central, multilingual research platform for medicine, nursing, life sciences and healthcare. It brings together international and European literature sources, study registries, open-access full texts, citations and retraction notices in one search. Unlike pure bibliographic databases, EUVIMED supports the entire research process – from discovery and appraisal with LIVIA and CLARA to traceable evidence synthesis. European in focus, transparent, interoperable and designed for science and healthcare.

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Lokaler Crossref-Datenbestand · journal-article

Culture media alter retinal organoid physiology promoting AAV transduction and retinal ganglion cell survival

Michelle O’Hara-Wright, Benjamin Y. Lim, Melissa M. Mangala, Vivienne Kaiser, Emilie Wong, Deborah Aubin, Victoria Nemeruck, Hallur Reynisson, Fatemeh Doroudian, Otilia P. Y. Chan, Nader Aryamanesh, Joao A. Paulo, Stefano Palomba, Mehdi Mirzaei, Samantha L. Ginn, Anai Gonzalez-Cordero

Gene Therapy · 2026

Vollständiger Abstract

Worum geht es in dieser Arbeit?

Abstract Human iPSC-derived retinal organoids offer a human-relevant platform for inherited retinal disease (IRD) gene therapy, yet robust AAV transduction in vitro remains challenging. Here we show that culture in BrainPhys™ (BP) medium markedly enhances AAV-mediated gene delivery. Brief BP exposure during the transduction window improves uptake, whereas continuous BP culture yields the strongest effects, indicating contributions from acute entry processes and longer-term cellular remodelling. Quantitative proteomics reveal coordinated upregulation of viral entry and trafficking mediators, including integrins that form αVβ5, and the trans-Golgi entry factor GPR108, together with enrichment of endosomal/ER-Golgi transport proteins, providing a mechanistic basis for enhanced vector processing. BP concurrently promotes neuronal maturation and metabolism, with pronounced increases in neurotrophic and synaptic proteins and broad enhancement of oxidative phosphorylation components. Functional calcium imaging demonstrates comparable neuronal dynamics across conditions but reveals robust, recurrent network-level bursts under BP, consistent with strengthened connectivity. BP also preserves retinal ganglion cells and maintains expression of canonical markers, aligning with a BDNF-centred interactome and improved circuit integration. Collectively, these findings identify the culture environment as a critical determinant of AAV efficacy in human retinal tissue models and position BP as a simple, scalable strategy to reduce vector requirements, enhance retinal cells targeting, and increase the fidelity of organoid-based non-animal testing for IRD gene therapy development.

Bibliografischer Nachweis

Publikationsdaten

Autor:innen
Michelle O’Hara-Wright, Benjamin Y. Lim, Melissa M. Mangala, Vivienne Kaiser, Emilie Wong, Deborah Aubin, Victoria Nemeruck, Hallur Reynisson, Fatemeh Doroudian, Otilia P. Y. Chan, Nader Aryamanesh, Joao A. Paulo, Stefano Palomba, Mehdi Mirzaei, Samantha L. Ginn, Anai Gonzalez-Cordero
Quelle
Gene Therapy
Publikation
2026-01-01
Band / Ausgabe
Nicht angegeben
Seiten
Nicht angegeben
ISSN / ISBN
0969-7128, 1476-5462
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Zitierfähiger Nachweis

Michelle O’Hara-Wright, Benjamin Y. Lim, Melissa M. Mangala, Vivienne Kaiser, Emilie Wong, Deborah Aubin, Victoria Nemeruck, Hallur Reynisson, Fatemeh Doroudian, Otilia P. Y. Chan, Nader Aryamanesh, Joao A. Paulo, Stefano Palomba, Mehdi Mirzaei, Samantha L. Ginn, Anai Gonzalez-Cordero (2026). Culture media alter retinal organoid physiology promoting AAV transduction and retinal ganglion cell survival. Gene Therapy. https://doi.org/10.1038/s41434-026-00642-0
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